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Dokumenttyp:
Masterarbeit
Autor(en):
Hakan Özlemis
Titel:
Autonomous Control of Low Voltage Grids Based on Data-Driven State Estimation and Reinforcement Learning
Abstract:
Increasing penetration of Distributed Energy Resources (DERs) in Low-Voltage (LV) grids necessitates novel, reliable control strategies combining grid monitoring and automated decision-making. However, this chained control task poses a significant challenge to Distribution System Operators (DSOs) due to the lack of accurate electrical grid models and automation infrastructure at the LV level. This thesis presents a model-free, data-driven control algorithm for voltage violation mitigation in LV...     »
Stichworte:
autonomous power systems ; data-driven ; grid control ; reinforcement learning ; state estimation
Fachgebiet:
ELT Elektrotechnik; ERG Energietechnik, Energiewirtschaft
DDC:
620 Ingenieurwissenschaften
Betreuer:
Mohapatra, Anurag (Dr.)
Jahr:
2023
Sprache:
en
Hochschule / Universität:
Technical University of Munich
Fakultät:
TUM School of Computation, Information and Technology
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